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Spira, B.

Publications and source records attributed to Spira, B..

2 recordsLinked to original sources

A bacterial tragedy of the commons that masks the actual frequency of mutants

The frequency of mutants in a population is central to the understanding of evolution. Mutant frequency is usually assessed by plating a bacterial culture on selective medium in which only specific rare mutants can grow, assuming that all mutant cells present on the plate are able to form colonies. Here we show an exception to this rule. Wild-type Escherichia coli cells are unable to grow with glycerol-2-phosphate (G2P) as a carbon source. In contrast, PHO-constitutive mutants can hydrolyse G2P to glycerol and form colonies on plates having G2P as their sole carbon source. However, the frequency of PHO-constitutive colonies on the selective plate is exceptionally low. Here we show that such mutations occur at a relatively high rate, but the growth of the existing mutants is inhibited due to a competition with the surrounding wild-type cells for the limited amounts of glycerol produced by the mutants. This scenario in which neither the wild-type nor the majority of the mutants are able to grow constitutes an unavoidable case of the tragedy of the commons. Evidence shows that the few mutants that do form colonies derive from micro-clusters of mutants on the selective plate. In addition, a mathematical model describes the fate of the wild-type and mutant populations on the selective plate.

genetics

Visible Light Plasmon Excitation of Silver Nanoparticles Against Antibiotic-Resistant Pseudomonas aeruginosa

The interaction of metallic nanoparticles with light excites a local surface plasmon resonance (LSPR). This phenomenon enables the transfer of hot electrons to substrates that release Reactive Oxygen Species (ROS). In this context, the present study was aimed at enhancing the antibacterial effect of citrate-covered silver nanoparticles (AgNPs), which already possess excellent antimicrobial properties, via LSPR excitation with visible LED against Pseudomonas aeruginosa, one of the most refractory organisms to antibiotic treatment. The Minimum Inhibitory Concentration (MIC) of AgNPs was 10 g/ml under dark conditions and 5 g/ml under light conditions. The combination of light and AgNPs led to 100% cell death after 60 minutes. Quantification of ROS via flow cytometry showed that LSPR stimulated AgNPs increased intracellular ROS concentration by 4.8-fold, suggesting that light-exposed AgNPs caused cell death via ROS production. Light exposition caused a small release of silver ions (0.4%) reaching a maximum after 6 hours. This indicates that silver ions play at most a secondary role in P. aeruginosa death. Overall, the results presented here show that LSPR generation from AgNPs by visible light enhances the antimicrobial activity of silver nanoparticles and can be an alternative for the treatment of topic infections caused by antibiotic-resistant bacteria such as P. aeruginosa.

microbiology